TECHNICAL FIELD
[0001] The present invention relates to a method of controlling a mechanical compression
ratio in a spark ignition type internal combustion engine.
BACKGROUND ART
[0002] Known in the art is a spark ignition type internal combustion engine provided with
a variable compression ratio mechanism able to change a mechanical compression ratio
and a variable valve timing mechanism able to control a closing timing of an intake
valve, performing a supercharging action by a supercharger at the time of engine medium
load operation and engine high load operation, and increasing the mechanical compression
ratio and delaying the closing timing of the intake valve as the engine load becomes
lower at the time of engine medium and high load operation in the state holding the
actual combustion ratio constant (for example, see Japanese Patent Publication (A)
No.
2004-218522 disclosing a method according to the preamble of claim 1).
[0003] However, in this internal combustion engine, even at the time of engine low load
operation, the mechanical compression ratio is made high and the closing timing of
the intake valve is delayed, but whether the mechanical compression ratio is higher
or lower than at the time of engine medium load operation is unclear and whether the
closing timing of the intake valve is later or earlier than at the time of engine
medium load operation is unclear. Further, in this internal combustion engine, whether
the actual compression ratio at the time of engine low load operation is higher or
lower than at the time of engine medium and high load operation is also unclear.
[0004] Further, generally speaking, in an internal combustion engine, the lower the engine
load, the worse the thermal efficiency, therefore to improve the thermal efficiency
at the time of vehicle operation, that is, to improve the fuel consumption, it becomes
necessary to improve the thermal efficiency at the time of engine low load operation.
However, in an internal combustion engine, the larger the expansion ratio, the longer
the period during which a force acts pressing down the piston at the time of the expansion
stroke, therefore the larger the expansion ratio, the more the thermal efficiency
is improved. On the other hand, if raising the engine compression ratio, the expansion
ratio becomes higher. Therefore to raise the thermal efficiency at the time of engine
operation, it is preferable to raise the mechanical compression ratio at the time
of engine low load operation as much as possible to enable the maximum expansion ratio
to be obtained at the time of engine low load operation.
[0005] However, in the above known internal combustion engine, whether the mechanical compression
ratio is being made as high as possible so as to obtain the maximum expansion ratio
at the time of engine low load operation is unclear. Further, in an internal combustion
engine provided with a variable compression ratio mechanism able to change a mechanical
compression ratio and a variable valve timing mechanism able to control a closing
timing of an intake valve, ordinarily the actual compression ratio is also made to
increase when making the mechanical compression ratio increase. That is to say, usually,
to make the compression ratio increase, the mechanical compression ratio is made to
increase. This is because it is believed that, at this time, there is no meaning unless
the actual compression ratio is increased.
[0006] However, if the actual compression ratio is increased, knocking occurs, so the actual
compression ratio cannot be raised that much. Therefore, in the past, since, even
if raising the mechanical compression ratio at the time of engine low load operation,
the actual compression ratio could not be raised that much, the mechanical compression
ratio was never made that high. As a result, in the past, there was the problem that
a sufficiently high expansion ratio could not be obtained at the time of engine low
load operation and accordingly a good fuel consumption could not be obtained commensurate
with the increased complexity of the structure.
DISCLOSURE OF THE INVENTION
[0008] An object of the present invention is to provide a method of controlling a mechanical
compression ratio in a spark ignition type internal combustion engine improved in
thermal efficiency at the time of vehicle operation and giving good fuel consumption.
[0009] The above object is solved by a method of controlling a mechanical compression ratio
having the features of claim 1.
BRIEF DESCRIPTION OF THE DRAWINGS
[0010]
FIG. 1 is an overview of a spark ignition type internal combustion engine.
FIG. 2 is a disassembled perspective view of a variable compression ratio mechanism.
FIG. 3 is a side cross-sectional view of the illustrated internal combustion engine.
FIG. 4 is a view of a variable valve timing mechanism.
FIG. 5 is a view showing the amounts of lift of the intake valve and exhaust valve.
FIG. 6 is a view for explaining the engine compression ratio, actual compression ratio,
and expansion ratio.
FIG. 7 is a view showing the relationship between the theoretical thermal efficiency
and expansion ratio.
FIG. 8 is a view for explaining an ordinary cycle and superhigh expansion ratio cycle.
FIG. 9 is a view showing the change in mechanical compression ratio etc. in accordance
with the engine load.
FIG. 10 is a flowchart for operational control.
FIG. 11 is a view showing the target actual compression ratio etc.
BEST MODE FOR CARRYING OUT THE INVENTION
[0011] FIG. 1 shows a side cross-sectional view of a spark ignition type internal combustion
engine.
[0012] Referring to FIG. 1, 1 indicates a crank case, 2 a cylinder block, 3 a cylinder head,
4 a piston, 5 a combustion chamber, 6 a spark plug arranged at the top center of the
combustion chamber 5, 7 an intake valve, 8 an intake port, 9 an exhaust valve, and
10 an exhaust port. The intake port 8 is connected through an intake branch tube 11
to a surge tank 12, while each intake branch tube 11 is provided with a fuel injector
13 for injecting fuel toward a corresponding intake port 8. Note that each fuel injector
13 may be arranged at each combustion chamber 5 instead of being attached to each
intake branch tube 11.
[0013] The surge tank 12 is connected through an intake duct 14 to an air cleaner 15, while
the intake duct 14 is provided inside it with a throttle valve 17 driven by an actuator
16 and an intake air amount detector 18 using for example a hot wire. On the other
hand, the exhaust port 10 is connected through an exhaust manifold 9 to a catalytic
converter 20 housing for example a three-way catalyst, while the exhaust manifold
19 is provided inside it with an air-fuel ratio sensor 21.
[0014] On the other hand, in the embodiment shown in FIG. 1, the connecting part of the
crank case 1 and the cylinder block 2 is provided with a variable compression ratio
mechanism A able to change the relative positions of the crank case 1 and cylinder
block 2 in the cylinder axial direction so as to change the volume of the combustion
chamber 5 when the piston 4 is positioned at compression top dead center, and there
is further provided with an actual compression action start timing changing mechanism
B able to change a start timing of an actual compression action. Note that in the
embodiment shown in FIG. 1, this actual compression action start timing changing mechanism
B is comprised of a variable valve timing mechanism able to control the closing timing
of the intake valve 7.
[0015] The electronic control unit 30 is comprised of a digital computer provided with components
connected with each other through a bidirectional bus 31 such as a ROM (read only
memory) 32, RAM (random access memory) 33, CPU (microprocessor) 34, input port 35,
and output port 36. The output signal of the intake air amount detector 18 and the
output signal of the air-fuel ratio sensor 21 are input through corresponding AD converters
37 to the input port 35. Further, the accelerator pedal 40 is connected to a load
sensor 41 generating an output voltage proportional to the amount of depression L
of the accelerator pedal 40. The output voltage of the load sensor 41 is input through
a corresponding AD converter 37 to the input port 35. Further, the input port 35 is
connected to a crank angle sensor 42 generating an output pulse every time the crankshaft
rotates by for example 30°. On the other hand, the output port 36 is connected through
the drive circuit 38 to a spark plug 6, fuel injector 13, throttle valve drive actuator
16, variable compression ratio mechanism A, and variable valve timing mechanism B.
[0016] FIG. 2 is a disassembled perspective view of the variable compression ratio mechanism
A shown in FIG. 1, while FIG. 3 is a side cross-sectional view of the illustrated
internal combustion engine. Referring to FIG. 2, at the bottom of the two side walls
of the cylinder block 2, a plurality of projecting parts 50 separated from each other
by a certain distance are formed. Each projecting part 50 is formed with a circular
cross-section cam insertion hole 51. On the other hand, the top surface of the crank
case 1 is formed with a plurality of projecting parts 52 separated from each other
by a certain distance and fitting between the corresponding projecting parts 50. These
projecting parts 52 are also formed with circular cross-section cam insertion holes
53.
[0017] As shown in FIG. 2, a pair of cam shafts 54, 55 is provided. Each of the cam shafts
54, 55 has circular cams 56 fixed on it able to be rotatably inserted in the cam insertion
holes 51 at every other position. These circular cams 56 are coaxial with the axes
of rotation of the cam shafts 54, 55. On the other hand, between the circular cams
56, as shown by the hatching in FIG. 3, extend eccentric shafts 57 arranged eccentrically
with respect to the axes of rotation of the cam shafts 54, 55. Each eccentric shaft
57 has other circular cams 58 rotatably attached to it eccentrically. As shown in
FIG. 2, these circular cams 58 are arranged between the circular cams 56. These circular
cams 58 are rotatably inserted in the corresponding cam insertion holes 53.
[0018] When the circular cams 56 fastened to the cam shafts 54, 55 are rotated in opposite
directions as shown by the solid line arrows in FIG. 3(A) from the state shown in
FIG. 3(A), the eccentric shafts 57 move toward the bottom center, so the circular
cams 58 rotate in the opposite directions from the circular cams 56 in the cam insertion
holes 53 as shown by the broken line arrows in FIG. 3(A). As shown in FIG. 3(B), when
the eccentric shafts 57 move toward the bottom center, the centers of the circular
cams 58 move to below the eccentric shafts 57.
[0019] As will be understood from a comparison of FIG. 3(A) and FIG. 3(B), the relative
positions of the crank case 1 and cylinder block 2 are determined by the distance
between the centers of the circular cams 56 and the centers of the circular cams 58.
The larger the distance between the centers of the circular cams 56 and the centers
of the circular cams 58, the further the cylinder block 2 from the crank case 1. If
the cylinder block 2 moves away from the crank case 1, the volume of the combustion
chamber 5 when the piston 4 is positioned as compression top dead center increases,
therefore by making the cam shafts 54, 55 rotate, the volume of the combustion chamber
5 when the piston 4 is positioned as compression top dead center can be changed.
[0020] As shown in FIG. 2, to make the cam shafts 54, 55 rotate in opposite directions,
the shaft of a drive motor 59 is provided with a pair of worm gears 61, 62 with opposite
thread directions. Gears 63, 64 engaging with these worm gears 61, 62 are fastened
to ends of the cam shafts 54, 55. In this embodiment, the drive motor 59 may be driven
to change the volume of the combustion chamber 5 when the piston 4 is positioned at
compression top dead center over a broad range. Note that the variable compression
ratio mechanism A shown from FIG. 1 to FIG. 3 shows an example. Any type of variable
compression ratio mechanism may be used.
[0021] On the other hand, FIG. 4 shows a variable valve timing mechanism B attached to the
end of the cam shaft 70 for driving the intake valve 7 in FIG. 1. Referring to FIG.
4, this variable valve timing mechanism B is provided with a timing pulley 71 rotated
by an engine crank shaft through a timing belt in the arrow direction, a cylindrical
housing 72 rotating together with the timing pulley 71, a shaft 73 able to rotate
together with an intake valve drive cam shaft 70 and rotate relative to the cylindrical
housing 72, a plurality of partitions 74 extending from an inside circumference of
the cylindrical housing 72 to an outside circumference of the shaft 73, and vanes
75 extending between the partitions 74 from the outside circumference of the shaft
73 to the inside circumference of the cylindrical housing 72, the two sides of the
vanes 75 formed with hydraulic chambers for advancing 76 and use hydraulic chambers
for retarding 77.
[0022] The feed of working oil to the hydraulic chambers 76, 77 is controlled by a working
oil feed control valve 85. This working oil feed control valve 85 is provided with
hydraulic ports 78, 79 connected to the hydraulic chambers 76, 77, a feed port 81
for working oil discharged from a hydraulic pump 80, a pair of drain ports 82, 83,
and a spool valve 84 for controlling connection and disconnection of the ports 78,
79, 81, 82, 83.
[0023] To advance the phase of the cams of the intake valve drive cam shaft 70, in FIG.
4, the spool valve 84 is made to move to the right, working oil fed from the feed
port 81 is fed through the hydraulic port 78 to the hydraulic chambers for advancing
76, and working oil in the hydraulic chambers for retarding 77 is drained from the
drain port 83. At this time, the shaft 73 is made to rotate relative to the cylindrical
housing 72 in the arrow direction.
[0024] As opposed to this, to retard the phase of the cams of the intake valve drive cam
shaft 70, in FIG. 4, the spool valve 84 is made to move to the left, working oil fed
from the feed port 81 is fed through the hydraulic port 79 to the hydraulic chambers
for retarding 77, and working oil in the hydraulic chambers for advancing 76 is drained
from the drain port 82. At this time, the shaft 73 is made to rotate relative to the
cylindrical housing 72 in the direction opposite to the arrows.
[0025] When the shaft 73 is made to rotate relative to the cylindrical housing 72, if the
spool valve 84 is returned to the neutral position shown in FIG. 4, the operation
for relative rotation of the shaft 73 is ended, and the shaft 73 is held at the relative
rotational position at that time. Therefore, it is possible to use the variable valve
timing mechanism B so as to advance or retard the phase of the cams of the intake
valve drive cam shaft 70 by exactly the desired amount.
[0026] In FIG. 5, the solid line shows when the variable valve timing mechanism B is used
to advance the phase of the cams of the intake valve drive cam shaft 70 the most,
while the broken line shows when it is used to retard the phase of the cams of the
intake valve drive cam shaft 70 the most. Therefore, the opening time of the intake
valve 7 can be freely set between the range shown by the solid line in FIG. 5 and
the range shown by the broken line, therefore the closing timing of the intake valve
7 can be set to any crank angle in the range shown by the arrow C in FIG. 5.
[0027] The variable valve timing mechanism B shown in FIG. 1 and FIG. 4 is one example.
For example, a variable valve timing mechanism or other various types of variable
valve timing mechanisms able to change only the closing timing of the intake valve
while maintaining the opening timing of the intake valve constant can be used. Further,
in the present invention, the variable valve timing mechanism B is used to change
the start timing of the actual compression action, so even if not a variable valve
timing mechanism, any form of actual compression action start timing changing mechanism
can be used if an actual compression action start timing changing mechanism able to
change a start timing of an actual compression action.
[0028] Next, the meaning of the terms used in the present application will be explained
with reference to FIG. 6. Note that FIG. 6(A), (B), and (C) show for explanatory purposes
an engine with a volume of the combustion chambers of 50 ml and a stroke volume of
the piston of 500 ml. In these FIG. 6(A), (B), and (C), the combustion chamber volume
shows the volume of the combustion chamber when the piston is at compression top dead
center.
[0029] FIG. 6(A) explains the mechanical compression ratio. The mechanical compression ratio
is a value determined mechanically from the stroke volume of the piston and combustion
chamber volume at the time of a compression stroke. This mechanical compression ratio
is expressed by (combustion chamber volume+stroke volume)/combustion chamber volume.
In the example shown in FIG. 6(A), this mechanical compression ratio becomes (50 ml+500
ml)/50 ml=11.
[0030] FIG. 6(B) explains the actual compression ratio. This actual compression ratio is
a value determined from the actual stroke volume of the piston from when the compression
action is actually started to when the piston reaches top dead center and the combustion
chamber volume. This actual compression ratio is expressed by (combustion chamber
volume+actual stroke volume)/combustion chamber volume. That is, as shown in FIG.
6(B), even if the piston starts to rise in the compression stroke, no compression
action is performed while the intake valve is opened. The actual compression action
is started after the intake valve closes. Therefore, the actual compression ratio
is expressed as follows using the actual stroke volume. In the example shown in FIG.
6(B), the actual compression ratio becomes (50 ml+450 ml)/50 ml=10.
[0031] FIG. 6(C) explains the expansion ratio. The expansion ratio is a value determined
from the stroke volume of the piston at the time of an expansion stroke and the combustion
chamber volume. This expansion ratio is expressed by the (combustion chamber volume+stroke
volume)/combustion chamber volume. In the example shown in FIG. 6(C), this expansion
ratio becomes (50 ml+500 ml)/50 ml=11.
[0032] Next, the most basic features of the present invention will be explained with reference
to FIG. 7 and FIG. 8. Note that FIG. 7 shows the relationship between the theoretical
thermal efficiency and the expansion ratio, while FIG. 8 shows a comparison between
the ordinary cycle and superhigh expansion ratio cycle used selectively in accordance
with the load in the present invention.
[0033] FIG. 8(A) shows the ordinary cycle when the intake valve closes near the bottom dead
center and the compression action by the piston is started from near substantially
compression bottom dead center. In the example shown in this FIG. 8(A) as well, in
the same way as the examples shown in FIG. 6(A), (B), and (C), the combustion chamber
volume is made 50 ml, and the stroke volume of the piston is made 500 ml. As will
be understood from FIG. 8(A), in an ordinary cycle, the mechanical compression ratio
is (50 ml+500 ml)/50 ml=11, the actual compression ratio is also about 11, and the
expansion ratio also becomes (50 ml+500 ml)/50 ml=11. That is, in an ordinary internal
combustion engine, the mechanical compression ratio and actual compression ratio and
the expansion ratio become substantially equal.
[0034] The solid line in FIG. 7 shows the change in the theoretical thermal efficiency in
the case where the actual compression ratio and expansion ratio are substantially
equal, that is, in the ordinary cycle. In this case, it is learned that the larger
the expansion ratio, that is, the higher the actual compression ratio, the higher
the theoretical thermal efficiency. Therefore, in an ordinary cycle, to raise the
theoretical thermal efficiency, the actual compression ratio should be made higher.
However, due to the restrictions on the occurrence of knocking at the time of engine
high load operation, the actual compression ratio can only be raised even at the maximum
to about 12, accordingly, in an ordinary cycle, the theoretical thermal efficiency
cannot be made sufficiently high.
[0035] On the other hand, under this situation, the inventors strictly differentiated between
the mechanical compression ratio and actual compression ratio and studied the theoretical
thermal efficiency and as a result discovered that in the theoretical thermal efficiency,
the expansion ratio is dominant, and the theoretical thermal efficiency is not affected
much at all by the actual compression ratio. That is, if raising the actual compression
ratio, the explosive force rises, but compression requires a large energy, accordingly
even if raising the actual compression ratio, the theoretical thermal efficiency will
not rise much at all.
[0036] As opposed to this, if increasing the expansion ratio, the longer the period during
which a force acts pressing down the piston at the time of the expansion stroke, the
longer the time that the piston gives a rotational force to the crankshaft. Therefore,
the larger the expansion ratio is made, the higher the theoretical thermal efficiency
becomes. The broken line in FIG. 7 shows the theoretical thermal efficiency in the
case of fixing the actual compression ratio at 10 and raising the expansion ratio
in that state. In this way, it is learned that the amount of rise of the theoretical
thermal efficiency when raising the expansion ratio in the state where the actual
compression ratio is maintained at a low value and the amount of rise of the theoretical
thermal efficiency in the case where the actual compression ratio is increased along
with the expansion ratio as shown by the solid line of FIG. 7 will not differ that
much.
[0037] If the actual compression ratio is maintained at a low value in this way, knocking
will not occur, therefore if raising the expansion ratio in the state where the actual
compression ratio is maintained at a low value, the occurrence of knocking can be
prevented and the theoretical thermal efficiency can be greatly raised. FIG. 8(B)
shows an example of the case when using the variable compression ratio mechanism A
and variable valve timing mechanism B to maintain the actual compression ratio at
a low value and raise the expansion ratio.
[0038] Referring to FIG. 8(B), in this example, the variable compression ratio mechanism
A is used to lower the combustion chamber volume from 50 ml to 20 ml. On the other
hand, the variable valve timing mechanism B is used to delay the closing timing of
the intake valve until the actual stroke volume of the piston changes from 500 ml
to 200 ml. As a result, in this example, the actual compression ratio becomes (20
ml+200 ml)/20 ml=11 and the expansion ratio becomes (20 ml+500 ml)/20 ml=26. In the
ordinary cycle shown in FIG. 8(A), as explained above, the actual compression ratio
is about 11 and the expansion ratio is 11. Compared with this case, in the case shown
in FIG. 8(B), it is learned that only the expansion ratio is raised to 26. This is
the reason that it is called the "superhigh expansion ratio cycle".
[0039] As explained above, generally speaking, in an internal combustion engine, the lower
the engine load, the worse the thermal efficiency, therefore to improve the thermal
efficiency at the time of vehicle operation, that is, to improve the fuel consumption,
it becomes necessary to improve the thermal efficiency at the time of engine low load
operation. On the other hand, in the superhigh expansion ratio cycle shown in FIG.
8(B), the actual stroke volume of the piston at the time of the compression stroke
is made smaller, so the amount of intake air which can be sucked into the combustion
chamber 5 becomes smaller, therefore this superhigh expansion ratio cycle can only
be employed when the engine load is relatively low. Therefore, in the present invention,
at the time of engine low load operation, the superhigh expansion ratio cycle shown
in FIG. 8(B) is set, while at the time of engine high load operation, the ordinary
cycle shown in FIG. 8(A) is set. This is the basic feature of the present invention.
[0040] Next, the operational control as a whole will be explained with reference to FIG.
9.
[0041] FIG. 9 shows the changes in the mechanical compression ratio, expansion ratio, closing
timing of the intake valve 7, actual compression ratio, the amount of intake air,
opening degree of the throttle valve 17, and pumping loss along with the engine load.
Note that in the embodiment according to the present invention, ordinarily the average
air-fuel ratio in the combustion chamber 5 is feedback controlled to the stoichiometric
air-fuel ratio based on the output signal of the air-fuel ratio sensor 21 so that
the three-way catalyst in the catalytic converter 20 can simultaneously reduce the
unburned HC, CO, and NO
x in the exhaust gas.
[0042] Now, as explained above, at the time of engine high load operation, the ordinary
cycle shown in FIG. 8(A) is executed. Therefore, as shown in FIG. 9, at this time,
since the mechanical compression ratio is made low, the expansion ratio becomes low.
As shown by the solid line in low in FIG. 9, the closing timing of the intake valve
7 is advanced as shown by the solid line in FIG. 5. Further, at this time, the amount
of intake air is large. At this time, the opening degree of the throttle valve 17
is maintained fully opened or substantially fully opened, so the pumping loss becomes
zero.
[0043] On the other hand, as shown in FIG. 9, along with the reduction in the engine load,
the mechanical compression ratio is increased, therefore the expansion ratio is also
increased. Further, at this time, the closing timing of the intake valve 7 is delayed
as the engine load becomes lower as shown by the solid line in FIG. 9 so that the
actual compression ratio is held substantially constant. Note that at this time as
well, the throttle valve 17 is held at the fully opened or substantially fully opened
state. Therefore the amount of intake air fed to the combustion chamber 5 is controlled
not by the throttle valve 17, but by changing the closing timing of the intake valve
7. At this time as well, the pumping loss becomes zero.
[0044] In this way when the engine load becomes lower from the engine high load operating
state, the mechanical compression ratio is increased along with the fall in the amount
of intake air under a substantially constant actual compression ratio. That is, the
volume of the combustion chamber 5 when the piston 4 reaches compression top dead
center is reduced proportionally to the reduction in the amount of intake air. Therefore
the volume of the combustion chamber 5 when the piston 4 reaches compression top dead
center changes proportionally to the amount of intake air. Note that at this time,
the air-fuel ratio in the combustion chamber 5 becomes the stoichiometric air-fuel
ratio, so the volume of the combustion chamber 5 when the piston 4 reaches compression
top dead center changes proportionally to the amount of fuel.
[0045] If the engine load becomes further lower, the mechanical compression ratio is further
increased. When the mechanical compression ratio reaches the limit mechanical compression
ratio forming the structural limit of the combustion chamber 5, in the region of a
load lower than the engine load L
1 when the mechanical compression ratio reaches the limit mechanical compression ratio,
the mechanical compression ratio is held at the limit engine compression ratio. Therefore
at the time of engine low load operation, the mechanical compression ratio becomes
maximum, and the expansion ratio also becomes maximum. Putting this another way, in
the present invention, so as to obtain the maximum expansion ratio at the time of
engine low load operation, the mechanical compression ratio is made maximum. Further,
at this time, the actual compression ratio is maintained at an actual compression
ratio substantially the same as that at the time of engine medium and high load operation.
[0046] On the other hand, as shown by the solid line in FIG. 9, the closing timing of the
intake valve 7 is delayed to the limit closing timing enabling control of the amount
of intake air fed to the combustion chamber 5 as the engine load becomes lower. In
the region of a load lower than the engine load L
2 when the closing timing of the intake valve 7 reaches the limit closing timing, the
closing timing of the intake valve 7 is held at the limit closing timing. If the closing
timing of the intake valve 7 is held at the limit closing timing, the amount of intake
air will no longer be able to be controlled by the change of the closing timing of
the intake valve 7. Therefore, the amount of intake air has to be controlled by some
other method.
[0047] In the embodiment shown in FIG. 9, at this time, that is, in the region of a load
lower than the engine load L
2 when the closing timing of the intake valve 7 reaches the limit closing timing, the
throttle valve 17 is used to control the amount of intake air fed to the combustion
chamber 5. However, if using the throttle valve 17 to control the amount of intake
air, as shown in FIG. 9, the pumping loss increases.
[0048] Note that to prevent this pumping loss, in the region of a load lower than the engine
load L
2 when the closing timing of the intake valve 7 reaches the limit closing timing, the
throttle valve 17 is held in the fully opened or substantially fully opened. In that
state, the lower the engine load, the larger the air-fuel ratio may be made. At this
time, the fuel injector 13 is preferably arranged in the combustion chamber 5 to perform
stratified combustion.
[0049] As shown in FIG. 9, at the time of engine low speed, regardless of the engine load,
the actual compression ratio is held substantially constant. The actual compression
ratio at this time is made the range of the actual compression ratio about at the
time of engine medium and high load operation ±10 percent, preferably ±5 percent.
Note that in the embodiment according to the present invention, the actual compression
ratio at the time of engine low speed is made about 10±1, that is, from 9 to 11. However,
if the engine speed becomes higher, the air-fuel mixture in the combustion chamber
5 is disturbed, so knocking becomes difficult, therefore in the embodiment according
to the present invention, the higher the engine speed, the higher the actual compression
ratio.
[0050] On the other hand, as explained above, in the superhigh expansion ratio cycle shown
in FIG. 8(B), the expansion ratio is made 26. The higher this expansion ratio, the
better, but if 20 or more, a considerably high theoretical thermal efficiency can
be obtained. Therefore, in the present invention, the variable compression ratio mechanism
A is formed so that the expansion ratio becomes 20 or more.
[0051] Further, in the example shown in FIG. 9, the mechanical compression ratio is changed
continuously in accordance with the engine load. However, the mechanical compression
ratio can also be changed in stages in accordance with the engine load.
[0052] On the other hand, as shown by the broken line in FIG. 9, as the engine load becomes
lower, by advancing the closing timing of the intake valve 7 as well, it is possible
to control the amount of intake air without depending on the throttle valve 17. Therefore,
in FIG. 9, if comprehensively expressing both the case shown by the solid line and
the case shown by the broken line, in the embodiment according to the present invention,
the closing timing of the intake valve 7 is shifted as the engine load becomes lower
in a direction away from compression bottom dead center BDC until the limit closing
timing L
2 enabling control of the amount of intake air fed into the combustion chamber.
[0053] FIG. 10 shows the operation control routine. Referring to FIG. 10, first, at step
100, the map shown in FIG. 11(A) is used to calculate the target actual compression
ratio. As shown in FIG. 11(A) this target actual compression ratio becomes higher
the higher the engine speed N. Next, at step 101, the map shown in FIG. 11(B) is used
to calculate the closing timing IC of the intake valve 7. That is, the closing timing
IC of the intake valve 7 required for feeding the required amount of intake air into
the combustion chamber 5 is stored as a function of the engine load L and engine speed
N in the form of a map as shown in FIG. 11(B) in advance in the ROM 32. This map is
used to calculate the closing timing IC of the intake valve 7.
[0054] Further, the mechanical compression ratio CR required for making the actual compression
ratio the target actual compression ratio is stored as a function of the engine load
L and engine speed N in the form of a map as shown in FIG. 11(C) in advance in the
ROM 32. At step 102, this map is used to calculate the mechanical compression ratio
CR. Next, at step 103, the mechanical compression ratio is made the mechanical compression
ratio CR by controlling the variable compression ratio mechanism A, and the closing
timing of the intake valve 7 is made the closing timing IC by controlling the variable
valve timing mechanism B.
LIST OF REFERENCE NOTATIONS
[0055]
1... crank case
2... cylinder block
3... cylinder head
4... piston
5... combustion chamber
7... intake valve
70... intake valve drive cam shaft
A... variable compression ratio mechanism
B... variable valve timing mechanism
1. A method of controlling a mechanical compression ratio by a variable compression mechanism
(A) and controlling a start timing of an actual compression action by an actual compression
action start timing changing mechanism (B) in a spark ignition type internal combustion
engine, wherein an expansion ratio is made a maximum expansion ratio by making the
mechanical compression ratio maximum at the time of engine low load operation and
at the time of engine low speed, characterized in that
said maximum expansion ratio is 20 or more, and an actual compression ratio at the
time of engine low load operation is made within a range of about ±10% with respect
to the actual compression ratio at the time of engine medium and high load operation.
2. A method as set forth in claim 1, wherein the higher the engine speed, the higher
the actual compression ratio.
3. A method as set forth in claim 1, wherein said actual compression action start timing
changing mechanism is comprised of a variable valve timing mechanism able to control
a closing timing of an intake valve (7).
4. A method as set forth in claim 3, wherein an amount of intake air fed into the combustion
chamber (5) is controlled by changing the closing timing of the intake valve (7).
5. A method as set forth in claim 4, wherein the closing timing of the intake valve (7)
is shifted as the engine load becomes lower in a direction away from compression bottom
dead center until a limit closing timing enabling control of the amount of intake
air fed into the combustion chamber (5).
6. A method as set forth in claim 5, wherein in a region of a load higher than the engine
load when the closing timing of the intake valve (7) reaches said limit closing timing,
the amount of intake air fed into the combustion chamber (5) is controlled by changing
the closing timing of the intake valve (7) without depending on a throttle valve (17)
provided in an engine intake passage (8, 11, 12, 14).
7. A method as set forth in claim 6, wherein in a region of a load higher than the engine
load when the closing timing of the intake valve (7) reaches said limit closing timing,
the throttle valve (17) is held at a fully opened state.
8. A method as set forth in claim 5, wherein in a region of a load lower than the engine
load when the closing timing of the intake valve (7) reaches said limit closing timing,
the amount of intake air fed into the combustion chamber (5) is controlled by a throttle
valve (17) provided in an engine intake passage (8, 11, 12, 14).
9. A method as set forth in claim 5, wherein in a region of a load lower than the engine
load when the closing timing of the intake valve (7) reaches said limit closing timing,
the lower the load, the larger the air-fuel ratio is made.
10. A method as set forth in claim 5, wherein in a region of a load lower than the engine
load when the closing timing of the intake valve (7) reaches said limit closing timing,
the closing timing of the intake valve (7) is held at said limit closing timing.
11. A method as set forth in claim 1, wherein said mechanical compression ratio is increased
as the engine load becomes lower to the limit mechanical compression ratio.
12. A method as set forth in claim 11, wherein in a region of a load lower than the engine
load when said mechanical compression ratio reaches said limit mechanical compression
ratio, the mechanical compression ratio is held at said limit mechanical compression
ratio.
13. A method as set forth in any of claims 1, 2 and 5 to 9, wherein the start timing of
the actual compression action is controlled by controlling a closing timing of an
intake valve (7), wherein the amount of intake air fed into a combustion chamber (5)
is controlled by mainly changing the closing timing of the intake valve (7).
14. A method as set forth in claim 13, wherein a throttle valve (17) is held at substantially
the fully opened state when the amount of intake air is controlled mainly by changing
the closing timing of the intake valve (7).
1. Verfahren zum Steuern eines mechanischen Verdichtungsverhältnisses durch einen variablen
Verdichtungsmechanismus (A) und Steuern einer Startzeit eines tatsächlichen Verdichtungsvorgangs
durch einen Startzeitänderungsmechanismus (B) eines tatsächlichen Verdichtungsvorgangs
in einer Funkenzündungsbrennkraftmaschine, wobei ein Expansionsverhältnis durch ein
Maximieren des mechanischen Verdichtungsverhältnisses zu dem Zeitpunkt eines Niedriglastmaschinenbetriebs
und zu dem Zeitpunkt einer niedrigen Maschinendrehzahl zu einem maximalen Expansionsverhältnis
gemacht wird,
dadurch gekennzeichnet, dass
das maximale Expansionsverhältnis 20 oder mehr ist und ein tatsächliches Verdichtungsverhältnis
zu dem Zeitpunkt eines Niedriglastmaschinenbetriebs innerhalb eines Bereichs von ungefähr
± 10% mit Hinblick auf das tatsächliche Verdichtungsverhältnis zu dem Zeitpunkt eines
mittleren und eines hohen Maschinenlastbetriebs gemacht wird.
2. Verfahren nach Anspruch 1, wobei je höher die Maschinendrehzahl ist, desto höher das
tatsächliche Verdichtungsverhältnis ist.
3. Verfahren nach Anspruch 1, wobei der Startzeitänderungsmechanismus des tatsächlichen
Verdichtungsvorgangs einen variablen Ventilzeitmechanismus aufzeigt, der in der Lage
ist, einen Schließzeitpunkt eines Einlassventils (7) zu steuern.
4. Verfahren nach Anspruch 3, wobei eine Einlassluftmenge, die in die Brennkammer (5)
zugeführt wird, durch ein Ändern des Schließzeitpunkts des Einlassventils (7) gesteuert
wird.
5. Verfahren nach Anspruch 4, wobei dann, wenn die Maschinenlast geringer wird, der Schließzeitpunkt
des Einlassventils (7) in eine Richtung weg von dem unteren Verdichtungstotpunkt bis
zu einem Grenzschließzeitpunkt versetzt wird, was eine Steuerung der Einlassluftmenge
ermöglicht, die in die Brennkammer (5) zugeführt wird.
6. Verfahren nach Anspruch 5, wobei in einem Lastbereich höher als die Maschinenlast,
wenn der Schließzeitpunkt des Einlassventils (7) den Grenzschließzeitpunkt erreicht,
die Einlassluftmenge, die in die Brennkammer (5) zugeführt wird, durch Ändern des
Schließzeitpunkts des Einlassventils (7) gesteuert wird, ohne von einem Drosselventil
(17) abzuhängen, das in einem Maschineneinlassdurchgang (8, 11, 12, 14) vorgesehen
ist.
7. Verfahren nach Anspruch 6, wobei in einem Lastbereich höher als die Maschinenlast,
wenn der Schließzeitpunkt des Einlassventils (7) den Grenzschließzeitpunkt erreicht,
das Drosselventil (17) in einem vollständig geöffneten Zustand gehalten wird.
8. Verfahren nach Anspruch 5, wobei in einem Lastbereich niedriger als die Maschinenlast,
wenn der Schließzeitpunkt des Einlassventils (7) den Grenzschließzeitpunkt erreicht,
die Einlassluftmenge, die in die Brennkammer (5) zugeführt wird, durch ein Drosselventil
(17) gesteuert wird, das in einem Maschineneinlassdurchgang (8, 11, 12, 14) vorgesehen
ist.
9. Verfahren nach Anspruch 5, wobei in einem Lastbereich niedriger als die Maschinenlast,
wenn der Schließzeitpunkt des Einlassventils (7) den Grenzschließzeitpunkt erreicht,
gilt, je niedriger die Last ist, desto höher wird das Luftkraftstoffverhältnis gemacht.
10. Verfahren nach Anspruch 5, wobei in einem Lastbereich niedriger als die Maschinenlast,
wenn der Schließzeitpunkt des Einlassventils (7) den Grenzschließzeitpunkt erreicht,
der Schließzeitpunkt des Einlassventils (7) an dem Grenzschließzeitpunkt gehalten
wird.
11. Verfahren nach Anspruch 1, wobei das mechanische Verdichtungsverhältnis zu dem mechanischen
Grenzverdichtungsverhältnis hin erhöht wird, wenn die Maschinenlast niedriger wird.
12. Verfahren nach Anspruch 11, wobei in einem Lastbereich niedriger als die Maschinenlast,
wenn das mechanische Verdichtungsverhältnis das mechanische Grenzverdichtungsverhältnis
erreicht, das mechanische Verdichtungsverhältnis an dem mechanischen Grenzverdichtungsverhältnis
gehalten wird.
13. Verfahren nach einem der Ansprüche 1, 2 und 5 bis 9, wobei die Startzeit des tatsächlichen
Verdichtungsvorgangs durch ein Steuern eines Schließzeitpunkts eines Einlassventils
(7) gesteuert wird, wobei die Einlassluftmenge, die in eine Brennkammer (5) zugeführt
wird, durch ein hauptsächliches Ändern des Schließzeitpunkts des Einlassventils (7)
gesteuert wird.
14. Verfahren nach Anspruch 13, wobei ein Drosselventil (17) im Wesentlichen an dem vollständig
geöffneten Zustand gehalten wird, wenn die Einlassluftmenge hauptsächlich durch Ändern
des Schließzeitpunkts des Einlassventils (7) gesteuert wird.
1. Procédé de commande d'un rapport de compression mécanique par un mécanisme (A) de
compression variable et de commande d'un minutage de départ d'une action de compression
effective par un mécanisme (B) de changement de minutage de départ d'action de compression
effective dans un moteur à combustion interne du type allumage par étincelle, où un
rapport d'expansion est établi à un rapport d'expansion maximal en maximisant le rapport
de compression mécanique au moment d'un fonctionnement à charge faible du moteur et
au moment où la vitesse du moteur est basse, caractérisé en ce que
ledit rapport d'expansion maximal est de 20 ou plus, et un rapport de compression
effectif au moment d'un fonctionnement à charge faible du moteur est établi dans une
gamme de ± 10% environ par rapport au rapport de compression effectif au moment d'une
fonctionnement à charge élevée et moyenne du moteur.
2. Procédé selon la revendication 1, dans lequel plus la vitesse du moteur est élevée,
plus le rapport de compression effectif est élevé.
3. Procédé selon la revendication 1, dans lequel ledit mécanisme de changement de minutage
de départ de l'action de compression effective est composé d'un mécanisme de distribution
variable des soupapes capable de commander une distribution de fermeture d'une soupape
d'admission (7).
4. Procédé selon la revendication 3, dans lequel une quantité d'air d'admission alimenté
dans la chambre de combustion (5) est commandée en changeant la distribution de fermeture
de la soupape d'admission (7).
5. Procédé selon la revendication 4, dans lequel la distribution de fermeture de la soupape
d'admission (7) est décalée à mesure que la charge du moteur devient plus petite dans
une direction éloignée du point mort bas de compression jusqu'à une distribution de
fermeture limite permettant la commande de la quantité d'air d'admission alimenté
dans la chambre de combustion (5).
6. Procédé selon la revendication 5, dans lequel dans une région d'une charge supérieure
à la charge de moteur lorsque la distribution de fermeture de la soupape d'admission
(7) atteint ladite distribution de fermeture limite, la quantité d'air d'admission
alimenté dans la chambre de combustion (5) est commandée en changeant la distribution
de fermeture de la soupape d'admission (7) indépendamment d'un papillon des gaz (17)
pourvu dans un passage d'admission (8, 11, 12, 14) du moteur.
7. Procédé selon la revendication 6, dans lequel dans une région de charge supérieure
à la charge de moteur lorsque la distribution de fermeture de la soupape d'admission
(7) atteint ladite distribution de fermeture limite, le papillon des gaz (17) est
gardé dans un état complètement ouvert.
8. Procédé selon la revendication 5, dans lequel dans une région d'une charge inférieure
à la charge de moteur lorsque la distribution de fermeture de la soupape d'admission
(7) atteint ladite distribution de fermeture limite, la quantité d'air d'admission
alimenté dans la chambre de combustion (5) est commandée par un papillon des gaz (17)
pourvu dans un passage d'admission (8, 11, 12, 14) du moteur.
9. Procédé selon la revendication 5, dans lequel dans une région d'une charge inférieure
à la charge de moteur lorsque la distribution de fermeture de la soupape d'admission
(7) atteint ladite distribution de fermeture limite, plus la charge est faible, plus
le rapport air/carburant est grand.
10. Procédé selon la revendication 5, dans lequel dans une région d'une charge inférieure
à la charge de moteur lorsque la distribution de fermeture de la soupape d'admission
(7) atteint ladite distribution de fermeture limite, la distribution de fermeture
de la soupape d'admission (7) est gardée au niveau de ladite distribution de fermeture
limite.
11. Procédé selon la revendication 1, dans lequel ledit rapport de compression mécanique
augmente à mesure que la charge du moteur devient inférieure au rapport de compression
mécanique limite.
12. Procédé selon la revendication 11, dans lequel dans une région d'une charge inférieure
à la charge de moteur lorsque ledit rapport de compression mécanique atteint ledit
rapport de compression mécanique, le rapport de compression mécanique est gardé au
niveau dudit rapport de compression mécanique limite.
13. Procédé selon l'une des revendications 1, 2 et 5 à 9, dans lequel le minutage de départ
de l'action de compression effective est commandée en commandant une distribution
de fermeture d'une soupape d'admission (7), où la quantité d'air d'admission alimenté
dans une chambre de combustion (5) est commandée en changeant principalement la distribution
de fermeture de la soupape d'admission (7).
14. Procédé selon la revendication 13, dans lequel un papillon des gaz (17) est gardé
essentiellement à l'état complètement ouvert lorsque la quantité d'air d'admission
est commandée en changeant principalement la distribution de fermeture de la soupape
d'admission (7).